Bispecific Antibody Molecule Inhibits Tumor Cell Proliferation More Efficiently Than the Two-Molecule Combination
Anna-Luisa Volk1, Aman Mebrahtu1, Bong-Kook Ko2
1School of Engineering Sciences in Biotechnology, Chemistry and Health, AlbaNova University Center, KTH-Royal Institute of Technology, 106 91, Stockholm, Sweden.
Background:
Monoclonal antibodies (mAbs) have proved to be a valuable tool for the treatment of different cancer types. However, clinical use of an increasing number of mAbs, have also highlighted limitations with monotherapy for cancers, in particular for such with more complex mechanisms, requiring action on additional molecules or pathways, or for cancers quickly acquiring resistance following monotherapy. An example for the latter is the mAb trastuzumab, FDA approved for treatment of metastatic gastric carcinoma. To circumvent this, researchers have reported synergistic, anti-proliferative effects by combination targeting of HER2 and EGFR by trastuzumab and the EGFR-targeting mAb Cetuximab overcoming trastuzumab resistance.
Methods:
Maintaining the proven functionality of trastuzumab, we have designed bi-specific antibody molecules, called AffiMabs, by fusing an EGFR-targeting Affibody molecule to trastuzumab's heavy or light chains. Having confirmed binding to EGFR and Her2 and cytotoxicity of our AffiMabs, we analyzed apoptosis rate, receptor surface levels, phosphorylation levels of receptors and associated signaling pathways as well as differentially expressed genes on transcriptome level with the aim to elucidate the mode of action of our AffiMabs.
Results:
The AffiMabs are able to simultaneously bind HER2 and EGFR and show increased cytotoxic effect compared to the original trastuzumab therapeutic molecule and, more importantly, even to the combination of trastuzumab and EGFR-targeting Affibody molecule. Analyzing the mode of action, we could show that bi-specific AffiMabs lead to reduced surface receptor levels and a downregulation of cell cycle associated genes on transcriptome level.
Conclusion:
Our study shows that transcriptome analysis can be used to validate the choice of receptor targets and guide the design of novel multi-specific molecules. The inherent modularity of the AffiMab format renders it readily applicable to other receptor targets.
Insights
Novel bispecific antibodies, AffiMabs, targeting both HER2 and EGFR, demonstrate enhanced cancer cell killing compared to single antibodies or combinations. Transcriptome analysis validated their mechanism, showing reduced receptor levels and cell cycle gene downregulation.
Area of Science:
- Oncology
- Immunotherapy
- Molecular Biology
Background:
- Monoclonal antibodies (mAbs) show limitations in cancer monotherapy due to resistance and complex mechanisms.
- Trastuzumab resistance in gastric cancer highlights the need for combination therapies targeting HER2 and EGFR.
- Previous studies indicated synergistic effects of combining trastuzumab with an EGFR-targeting mAb.
Purpose of the Study:
- To design and evaluate bispecific antibodies (AffiMabs) targeting both HER2 and EGFR.
- To assess the efficacy and mechanism of action of AffiMabs in overcoming resistance.
- To validate transcriptome analysis for guiding multi-specific antibody design.
Main Methods:
- Engineered bispecific AffiMabs by fusing an EGFR-targeting Affibody to trastuzumab.
- Assessed AffiMab binding to HER2 and EGFR, and their cytotoxic effects.
- Analyzed apoptosis, receptor levels, signaling pathways, and gene expression via transcriptome analysis.
Main Results:
- AffiMabs simultaneously bind HER2 and EGFR, exhibiting superior cytotoxicity over trastuzumab or combination therapy.
- Mode of action involves reduced surface receptor levels and downregulation of cell cycle-associated genes.
- Transcriptome analysis confirmed the molecular effects of AffiMabs.
Conclusions:
- Transcriptome analysis is a valuable tool for validating receptor targets and designing novel multi-specific antibodies.
- The AffiMab platform's modularity allows for adaptation to other receptor targets.
- Bispecific antibodies offer a promising strategy for overcoming cancer treatment resistance.
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